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A Novel Algorithm for Separating Multiple PD Sources in a Substation Based on Spectrum Reconstruction of UHF Signals

机译:基于UHF信号频谱重构的变电站多PD源分离新算法

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摘要

Field noise interference suppression and effective extraction of signal characteristics are two keys to partial-discharge (PD) signal detection and analysis. In this paper, the autoregressive moving average (ARMA) process is utilized to model ultra-high-frequency (UHF) signals radiated by PDs. The estimation, which is based on high-order cumulants, of the ARMA orders and parameters is given theoretical analysis and implementation. The spectra of the detected signals are reconstructed with the model estimated. Then, characteristic frequencies are selected based on the reconstructed spectra and Fisher-like class separation measures. The radial basis function neural network is trained for the separation of the observed signals. Using the proposed method, UHF signals generated by electromagnetic simulation software are efficaciously modeled, reconstructed, and separated from mixing Gaussian white noises of varying signal-to-noise ratios and fixed-frequency signals. Finally, the step to obtain the number of PD sources in the assumed substation is proposed. UHF signals collected in a substation are processed by the proposed procedure, and PD sources are separated. This separation result is compared with PD sources localization results calculated by the time delay sequence, and the effectiveness of the method in the substation field interference circumstances is verified.
机译:场噪声干扰抑制和有效提取信号特征是局部放电(PD)信号检测和分析的两个关键。本文利用自回归移动平均(ARMA)过程对PD辐射的超高频(UHF)信号进行建模。理论分析和实现给出了基于高阶累积量的ARMA阶次和参数估计。用估计的模型重建检测到的信号的频谱。然后,基于重构频谱和类似费舍尔的类分离度量选择特征频率。训练径向基函数神经网络以分离观察到的信号。使用所提出的方法,可以有效地对电磁仿真软件生成的UHF信号进行建模,重构和分离,从而将信噪比不同的高斯白噪声与固定频率信号混合在一起。最后,提出了在假设的变电站中获取PD源数量的步骤。通过提议的程序处理在变电站中收集的UHF信号,并分离PD源。将该分离结果与由时延序列计算的PD源定位结果进行比较,验证了该方法在变电站现场干扰情况下的有效性。

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